Publication:
Invited paper: A Review of Thresheld Convergence

dc.contributor.authorChen, Stephen
dc.contributor.authorMontgomery, James
dc.contributor.authorBolufé-Röhler, Antonio
dc.contributor.authorGonzalez-Fernandez, Yasser
dc.date.accessioned2016-09-20T10:43:14Z
dc.date.available2016-09-20T10:43:14Z
dc.date.issued2015
dc.date.updated2016-09-20T10:43:14Z
dc.description.abstractA multi-modal search space can be defined as having multiple attraction basins ¿ each basin has a single local optimum which is reached from all points in that basin when greedy local search is used. Optimization in multi-modal search spaces can then be viewed as a two-phase process. The first phase is exploration in which the most promising attraction basin is identified. The second phase is exploitation in which the best solution (i.e. the local optimum) within the previously identified attraction basin is attained. The goal of thresheld convergence is to improve the performance of search techniques during the first phase of exploration. The effectiveness of thresheld convergence has been demonstrated through applications to existing metaheuristics such as particle swarm optimization and differential evolution, and through the development of novel metaheuristics such as minimum population search and leaders and followers.
dc.description.versionArtículo revisado por pares
dc.identifier.citationGECONTEC: Revista Internacional de Gestión del Conocimiento y la Tecnología
dc.identifier.issn2255-5684
dc.identifier.urihttp://hdl.handle.net/10433/2780
dc.language.isoen
dc.publisherUniversidad Pablo de Olavide
dc.relation.publisherversionhttp://www.upo.es/revistas/index.php/gecontec/article/view/1410
dc.rightsCopyright (c) 2015 GECONTEC: Revista Internacional de Gestión del Conocimiento y la Tecnología
dc.subjectExploration
dc.subjectExploitation
dc.subjectHeuristic Algorithms
dc.subjectOptimization
dc.subjectMulti-modality
dc.titleInvited paper: A Review of Thresheld Convergence
dspace.entity.typePublication

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